The present disclosure relates generally to cargo vehicles and methods of making the same. More particularly, the present disclosure relates to vehicles having composite cargo bodies and methods of making the same.
Vehicles having cargo bodies are used in the transportation industry for transporting many different types of cargo. Certain cargo bodies may be refrigerated and insulated to transport temperature-sensitive cargo. The use of metal components within the floor, roof, sidewalls, and/or nose of the cargo body may contribute to heat loss from the interior of the cargo body.
A vehicle is disclosed having a composite cargo body assembled in a manner that may improve thermal efficiency, fuel efficiency, and costs of manufacturing.
According to an exemplary embodiment of the present disclosure, a cargo body for a vehicle is disclosed. The cargo body includes a composite floor having an upper surface, a lower surface, a right longitudinal support beam that extends from the lower surface, wherein the right longitudinal support beam is made from a composite material, and a left longitudinal support beam that extends from the lower surface, wherein the left longitudinal support beam is made from a composite material. The cargo body also includes a composite roof, a composite right sidewall coupled to the floor and the roof, a composite left sidewall coupled to the floor and the roof, and a composite nose coupled to the floor, the roof, the right sidewall, and the left sidewall.
In certain embodiments, the right sidewall is adhesively bonded to the floor and the roof, the left sidewall is adhesively bonded to the floor and the roof, and the nose is adhesively bonded to the floor, the roof, the right sidewall, and the left sidewall.
In certain embodiments, each of the floor, the roof, the right sidewall, the left sidewall, and the nose is made from a fiber-reinforced plastic material.
In certain embodiments, the floor is a single molded component, the roof is a single molded component, the right sidewall is a single molded component, the left sidewall is a single molded component, and the nose is a single molded component distinct from the floor.
In certain embodiments, the cargo body further includes a side door opening in one of the sidewalls, and a side door frame positioned around the side door opening and configured to receive a side door, the side door frame including an exterior portion adhesively bonded to an exterior surface of the corresponding sidewall and an interior portion adhesively bonded to an interior surface of the corresponding sidewall.
In certain embodiments, the corresponding sidewall includes at least one support beam positioned between the exterior portion and the interior portion of the side door frame.
In certain embodiments, the at least one support beam is positioned between a terminal end of the exterior portion and a terminal end of the interior portion of the side door frame.
In certain embodiments, the cargo body further includes an opening in the nose configured to receive a thermal control unit, and a plurality of connectors adhesively bonded to the nose and mechanically fastened to the thermal control unit.
In certain embodiments, the nose includes at least one of a left vertical support beam that forms a left vertical edge of the opening, a right vertical support beam that forms a right vertical edge of the opening, an upper horizontal support beam that forms an upper horizontal edge of the opening, and a lower horizontal support beam that forms a lower horizontal edge of the opening.
In certain embodiments, the plurality of connectors includes an L-shaped connector that is adhesively bonded to both the nose and the roof.
In certain embodiments, the vehicle includes a motorized truck, a chassis including a right rail and a left rail, and a plurality of traction devices coupled to the chassis and powered by the motorized truck.
In certain embodiments, the floor includes a composite right support beam coupled to the right rail of the chassis via a plurality of right connector assemblies, wherein each right connector assembly is adhesively bonded to the right support beam of the floor and coupled to the right rail of the chassis, and a composite left support beam coupled to the left rail of the chassis via a plurality of left connector assemblies, wherein each left connector assembly is adhesively bonded to the left support beam of the floor and coupled to the left rail of the chassis.
In certain embodiments, each connector assembly includes an upper connector adhesively bonded to the corresponding support beam of the floor, and a lower connector positioned below the corresponding rail of the chassis and mechanically fastened to the upper connector.
In certain embodiments, each connector assembly further comprises a first fastener and a second fastener, the first and second fasteners extending vertically between the upper and lower connectors on either side of the corresponding rail.
In certain embodiments, each connector assembly further comprises an intermediate connector positioned between the corresponding support beam of the floor and the corresponding rail of the chassis, the intermediate connector being mechanically fastened to the upper and lower connectors.
According to another exemplary embodiment of the present disclosure, a cargo body for a vehicle is disclosed, the cargo body including a floor, a roof, a right sidewall adhesively bonded to the floor and the roof, a left sidewall adhesively bonded to the floor and the roof, and a nose adhesively bonded to the floor, the roof, the right sidewall, and the left sidewall, wherein each of the floor, the roof, the right sidewall, the left sidewall, and the nose is made from a composite material.
In certain embodiments, the cargo body further includes a rear door assembly including a rear frame, a rear right connector adhesively bonded to the right sidewall and coupled to the rear frame, a rear left connector adhesively bonded to the left sidewall and coupled to the rear frame, and an upper rear connector adhesively bonded to the roof and coupled to the rear frame, wherein each of the rear right and rear left connectors extends vertically along a height of the cargo body, and the upper rear connector extends horizontally along a width of the cargo body.
In certain embodiments, each of the rear right, rear left, and upper rear connectors is a flat plate.
In certain embodiments, each of the rear right, rear left, and upper rear connectors is mechanically fastened to the rear frame.
In certain embodiments, the cargo body further includes a lower right connector adhesively bonded to the floor and the right sidewall, a lower left connector adhesively bonded to the floor and the left sidewall, an upper right connector adhesively bonded to the roof and the right sidewall, and an upper left connector adhesively bonded to the roof and the left sidewall, wherein each of the lower right, lower left, upper right, and upper left connectors extends horizontally along a length of the cargo body.
In certain embodiments, each of the lower right, lower left, upper right, and upper left connectors is an L-bracket.
In certain embodiments, the cargo body further includes at least one of an upper right conduit at least partially defined by the upper right connector, and an upper left conduit at least partially defined by the upper left connector.
In certain embodiments, the cargo body further includes a lower front connector adhesively bonded to the floor and the nose, and an upper front connector adhesively bonded to the roof and the nose, wherein each of the lower front and upper front connectors extends horizontally along a width of the cargo body.
In certain embodiments, the lower front connector is a flat plate, and the upper front connector is an L-bracket.
In certain embodiments, the cargo body further includes a front right connector adhesively bonded to the right sidewall and the nose, and a front left connector adhesively bonded to the left sidewall and the nose, wherein each of the front right and front left connectors extends vertically along a height of the cargo body.
In certain embodiments, each of the front right and front left connectors is a rounded L-bracket.
In certain embodiments, the floor is in direct contact with the right sidewall, the left sidewall, and the nose, and the roof is in direct contact with the right sidewall, the left sidewall, and the nose.
In certain embodiments, the composite material is a fiber-reinforced plastic.
According to another exemplary embodiment of the present disclosure, a method is disclosed for manufacturing a vehicle including a cargo body, the method including: providing a floor, a roof, a right sidewall, a left sidewall, and a nose each made from a composite material; bonding the right sidewall to the floor and the roof; bonding the left sidewall to the floor and the roof; and bonding the nose to the floor, the roof, the right sidewall, and the left sidewall.
In certain embodiments, the method further includes connecting a side door to the cargo body by: bonding a side door frame to at least one of the sidewalls; and coupling the side door to the side door frame.
In certain embodiments, the method further includes connecting a thermal control unit to the cargo body by: bonding a front connector to the nose; and mechanically fastening the thermal control unit to the front connector.
In certain embodiments, the method further includes connecting a rear door assembly to the cargo body by: bonding a rear connector to the cargo body; and mechanically fastening the rear connector to the rear door assembly.
In certain embodiments, the method further includes connecting the cargo body to a chassis by: bonding a connector to a longitudinal support beam of the floor; and mechanically fastening the connector to the chassis.
Additional features and advantages of the present invention will become apparent to those skilled in the art upon consideration of the following detailed description of the illustrative embodiments exemplifying the best mode of carrying out the invention as presently perceived.
The foregoing aspects and many of the intended advantages of this invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description when taken in conjunction with the accompanying drawings.
Corresponding reference characters indicate corresponding parts throughout the several views. Although the drawings represent embodiments of various features and components according to the present disclosure, the drawings are not necessarily to scale and certain features may be exaggerated in order to better illustrate and explain the present disclosure. The exemplification set out herein illustrates an embodiment of the invention, and such an exemplification is not to be construed as limiting the scope of the invention in any manner.
For the purposes of promoting an understanding of the principals of the invention, reference will now be made to the embodiments illustrated in the drawings, which are described below. The embodiments disclosed below are not intended to be exhaustive or limit the invention to the precise form disclosed in the following detailed description. Rather, the embodiments are chosen and described so that others skilled in the art may utilize their teachings. It will be understood that no limitation of the scope of the invention is thereby intended. The invention includes any alterations and further modifications in the illustrative devices and described methods and further applications of the principles of the invention which would normally occur to one skilled in the art to which the invention relates.
1. Cargo Vehicle
Referring initially to
In the illustrated embodiment of
2. Composite Materials
The cargo body 130 may be constructed, at least in part, of composite materials. For example, the floor 140, roof 150, right and left sidewalls 160, and/or nose 170 of the cargo body 130 may be constructed of composite materials. As such, the cargo body 130, as well as the floor 140, roof 150, right and left sidewalls 160, and/or nose 170 of the cargo body 130, may be referred to herein as composite structures. These composite structures may lack internal metal components. Also, each composite structure may be a single, unitary component, which may be formed from a plurality of layers permanently coupled together. Other elements of the cargo body 130 may be constructed of non-composite (e.g., metallic) materials. For example, the rear frame 182 of the cargo body 130 may be constructed of metallic materials.
The composite construction of the cargo body 130 may present certain advantages. First, because the composite structures may lack internal metal components, the composite cargo body 130 may have a reduced heat loss coefficient (Ua) and improved thermal efficiency. Also, the composite cargo body 130 may operate to minimize outgassing of blowing agents, minimize air loss, and minimize water intrusion. Additionally, the composite cargo body 130 may be lighter in weight than a typical metallic cargo body, which may improve fuel efficiency. Further, the composite cargo body 130 may have fewer metallic structures than a typical cargo body, which may make the cargo body 130 less susceptible to corrosion. Also, the composite cargo body 130 may include fewer parts than a typical metallic cargo body, which may simplify construction, reduce inventory, and reduce variation in manufacturing. Further, the composite cargo body 130 may be suitable for use with sensitive cargo, including foodstuffs, because the composite materials may be inert to avoid reacting with the cargo and other materials and because the composite materials may be easy to clean and maintain to ensure proper hygiene. As a result, the composite cargo body 130 may qualify as “food grade” equipment.
Composite materials are generally formed by combining two or more different constituents that remain separate and distinct in the final composite material. Exemplary composite materials include fiber-reinforced plastics. Such materials may be formed from an extruded preform assembly of a woven or stitched fiberglass cloth, a non-woven spun bond polymeric material, and a foam core (not shown). These preforms may be cut to size, combined in a mold resembling the final shape with other fiberglass and resin layers, and wetted with at least one resin and a catalyst to define a single structure during a curing process. The spun bond polymeric material may be mechanically stitched to the fiberglass cloth and/or the foam before the preforms are wetted with resin. In one embodiment, the spun bond material may be a polyester material, the foam may be a polyurethane material, and the resin may be a thermoset plastic resin matrix.
The individual preforms may be sized, shaped, and arranged in a manner that accommodates the strength requirements of the final structure. In areas of the final structure requiring less strength, the preforms may be relatively large in size, with the foam cores spanning relatively large distances before reaching the surrounding fiberglass and polymeric skins. By contrast, in areas of the final structure requiring more strength, the preforms may be relatively small in size, with the foam cores spanning relatively small distances before reaching the surrounding fiberglass and polymeric skins. For example, the preforms may be shaped as relatively wide panels in areas of the final structure requiring less strength and as relatively narrow support beams in areas of the final structure requiring more strength. Other exemplary techniques for strengthening such support beams include reinforcing the outer skins, such as by using uni-directional glass fibers or additional cloth in the outer skins, and/or reinforcing the inner cores, such as by using hard plastic blocks or higher density foam in the inner cores.
After the curing process, a coating may be applied to the inner and/or outer surfaces of the cured preforms. Additionally, metallic or non-metallic sheets or panels may be applied to the inner and/or outer surfaces of the cured preforms, either in place of the coating or with the coating. The metallic sheets or panels may be comprised of stainless steel, aluminum, and/or coated carbon steel, and the non-metallic sheets or panels may be comprised of carbon fiber composites, for example.
Exemplary composite structures include DuraPlate® structures provided by Wabash National Corporation of Lafayette, Ind. and PRISMA® structures provided by Compsys, Inc. of Melbourne, Fla. Such composite structures may be manufactured using technology disclosed in the following patents and published patent applications, each of which is incorporated by reference in its entirety herein: U.S. Pat. Nos. 5,429,066, 5,800,749, 5,664,518, 5,897,818, 6,013,213, 6,004,492, 5,908,591, 6,497,190, 6,911,252, 5,830,308, 6,755,998, 6,496,190, 6,911,252, 6,723,273, 6,869,561, 8,474,871, 6,206,669, and 6,543,469, and U.S. Patent Application Publication Nos. 2014/0262011 and 2014/0199551.
3. Adhesive Bonding
Various connections or joints of the composite cargo body 130 may be assembled, at least in part, using adhesive bonding. The adhesive 300 may be a structural adhesive that is suitable for load-bearing applications. The adhesive 300 may have a lap shear strength greater than 1 MPa, 10 MPa, or more, for example. Exemplary adhesives 300 include, for example, epoxies, acrylics, urethanes (single and two part), polyurethanes, methyl methacrylates (MMA), cyanoacrylates, anaerobics, phenolics, and/or vinyl acetates. The adhesive 300 may be selected based on the needs of the particular application.
The method used to form an adhesive bond may also vary according to the needs of the particular application. First, the surfaces receiving the adhesive 300 (i.e., adherends) may be pre-treated, such as by abrading the surfaces, applying a primer, and/or cleaning the surfaces with a suitable cleaner (e.g., denatured alcohol). Second, the adhesive 300 may be applied to the surfaces over a predetermined application time (i.e., “open” time) and at a predetermined application temperature. In certain embodiments, the application temperature may be below the glass-transition temperature of the adhesive 300. Third, pressure may be applied to the surfaces, such as by using clamps, weights, vacuum bags, and/or ratchet straps, for example. Finally, the adhesive 300 may be allowed to solidify. Some adhesives 300 may undergo a chemical reaction in order to solidify, referred to as curing. This curing may occur over a predetermined cure time and at a predetermined cure temperature. In certain embodiments, the adhesive 300 may be heated during curing such that the cure temperature is higher than the application temperature.
Using adhesive bonding to assemble the composite cargo body 130 rather than mechanical fasteners may present certain advantages. First, the composite structures may not require holes for mechanical fasteners, so the structural integrity of the composite structures may be maintained. Also, the adhesive bond may be stronger than a connection using mechanical fasteners. In fact, the strength of the adhesive bond may exceed the strength of the composite structures themselves, so the composite structures may delaminate or otherwise fail before the adhesive 300 fails. Further, the elimination of mechanical fasteners may also provide improved aesthetics. Finally, the adhesive 300 may form a seal between the adherends, which may help fill intentional or unintentional spaces between the adherends and insulate the cargo body 130.
4. Connectors
Various connections of the composite cargo body 130 may be assembled using one or more connectors, which may include brackets, braces, plates, and combinations thereof, for example. The connectors may vary in size and shape. For example, suitable connectors may be L-shaped, C-shaped, T-shaped, pi-shaped, flat, or bent.
The connectors may be constructed of metallic materials (e.g., aluminum, titanium, or steel), polymeric materials, wood, or composite materials. In certain embodiments, the connectors are constructed of materials which are dissimilar from the composite material used to construct the composite cargo body 130. The connectors may be fabricated by extrusion, pultrusion, sheet forming and welding, roll forming, and/or casting, for example.
The connectors may be adhesively bonded to composite structures of the cargo body 130. For example, the connectors may be adhesively bonded to the composite floor 140, the composite roof 150, the composite right and left sidewalls 150, and/or the composite nose 170 of the cargo body 130. The connectors may be mechanically fastened to non-composite (e.g., metallic) structures of the cargo body 130. For example, the connectors may be mechanically fastened to the metallic rear frame 182 of the cargo body 130. Suitable mechanical fasteners include bolts, rivets, and screws, for example.
5. Connection Between Composite Floor and Metallic Chassis
Referring next to
A plurality of connector assemblies 510 is provided along the length of vehicle 100 (
As shown in
To assemble the connector assembly 510, the upper connectors 520 may first be adhesively bonded to the composite support beam 142 of the composite floor 140. Specifically, portions 522, 524 of the upper connectors 520 may be adhesively bonded to the composite support beam 142 of the composite floor 140 using adhesive 300. Next, the composite support beam 142 of the composite floor 140 may be lowered onto the corresponding rail 112 of the chassis 110 with the spacer 502 and the intermediate connector 530 stacked therebetween. The horizontal portion 532 of the butterfly-shaped intermediate connector 530 may be sized and shaped to fit within the notch 504 of the spacer 502, and the angled portions 534 of the butterfly-shaped intermediate connector 530 may extend downwardly on either side of the rail 112 of the chassis 110 to prevent side-to-side movement of the cargo body 130 relative to the rail 112. Then, shims 550 may be inserted between the upper connectors 520 and the intermediate connector 530 to fill the spaces on either side of the spacer 502. Next, the lower connector 540 may be positioned beneath the rail 112 of the chassis 110. Finally, threaded rods 560 may be inserted vertically through aligned holes in portions 526 of the upper connectors 520, shims 550, portion 532 of the intermediate connector 530, and portion 542 of the lower connector 540 and held in place using nuts 562 to clamp the connector assembly 510 together on either side of the rail 112. When connector assembly 510 is clamped together in this manner, connection 500 is formed between the composite floor 140 of the cargo body 130 and the metallic chassis 110 of the straight frame vehicle 100. This connection 500 prevents the cargo body 130 from sliding off the chassis 110 when vehicle 100 is stopping, traveling, or parking on a hill, for example. This connection 500 also prevents the cargo body 130 from shifting side-to-side relative to the chassis 110 when vehicle 100 is turning, for example.
6. Connection Between Composite Sidewalls and Composite Floor
Referring next to
The connection 600 illustratively includes an exterior connector 610 positioned outside of the cargo body 130 and an interior connector 620 positioned inside of the cargo body 130. The illustrative exterior connector 610 is a corner bracket that is generally L-shaped in cross-section, having a vertical portion 612 and a horizontal portion 614. The illustrative interior connector 620 is also a corner bracket that is generally L-shaped in cross-section, having a vertical portion 622 and a horizontal portion 624. Both the exterior connector 610 and the interior connector 620 may be elongate structures that extend horizontally along the length of vehicle 100. However, as discussed in Section 4 above, the exterior connector 610 and the interior connector 620 may vary in size and shape. For example, rather than being L-shaped as shown in
To assemble the connection 600, the exterior connector 610 may first be adhesively bonded to the composite floor 140. Specifically, portion 612 of the exterior connector 610 may be adhesively bonded to the composite floor 140 using adhesive 300. Portion 614 of the exterior connector 610 may wrap beneath the composite floor 140 with or without the need for additional adhesive. Next, the composite sidewall 160 may be lowered onto the outer edge 144 of the composite floor 140 and adhesively bonded to portion 612 of the exterior connector 610 using adhesive 300. It is also within the scope of the present disclosure to adhesively bond the lower end 162 of the composite sidewall 160 directly to the outer edge 144 of the composite floor 140. Finally, the interior connector 620 may be adhesively bonded to the composite sidewall 160 and the composite floor 140. Specifically, portion 622 of the interior connector 620 may be adhesively bonded to the composite sidewall 160 using adhesive 300, and portion 624 of the interior connector 620 may be adhesively bonded to the composite floor 140 using adhesive 300.
According to an exemplary embodiment of the present disclosure, the outer edge 144 of the composite floor 140 includes an outer recess 145 that is sized and shaped to receive portion 624 of the interior connector 620. When assembled, the composite floor 140 and the interior connector 620 may cooperate to define a flush surface 630 for cargo.
7. Connection Between Composite Sidewalls and Composite Roof
Referring next to
The connection 700 illustratively includes an exterior connector 710 positioned outside of the cargo body 130 and an interior connector 720 positioned inside of the cargo body 130. The illustrative exterior connector 710 is a corner bracket that is generally L-shaped in cross-section, having a vertical portion 712 and a horizontal portion 714. The illustrative interior connector 720 is also a corner bracket that is generally L-shaped in cross-section, having a vertical portion 722 and a horizontal portion 724. Both the exterior connector 710 and the interior connector 720 may be elongate structures that extend horizontally along the length of vehicle 100. However, as discussed in Section 4 above, the exterior connector 710 and the interior connector 720 may vary in size and shape. For example, rather than being L-shaped as shown in
To assemble the connection 700, the composite roof 150 may first be lowered onto the upper end 164 of the composite sidewall 160. It is within the scope of the present disclosure to adhesively bond the composite roof 150 directly to the composite sidewall 160 using adhesive 300. Next, the exterior connector 710 may be adhesively bonded to the composite sidewall 160 and the composite roof 150. Specifically, portion 712 of the exterior connector 710 may be adhesively bonded to the composite sidewall 160 using adhesive 300, and portion 714 of the exterior connector 710 may be adhesively bonded to the composite roof 150 using adhesive 300. Finally, the interior connector 720 may be adhesively bonded to the composite sidewall 160 and the composite roof 150. Specifically, portion 722 of the interior connector 720 may be adhesively bonded to the composite sidewall 160 using adhesive 300, and portion 724 of the interior connector 720 may be adhesively bonded to the composite roof 150 using adhesive 300.
According to an exemplary embodiment of the present disclosure, connection 700 includes a conduit 730 to accommodate electrical wiring, air lines, or other equipment. In the illustrated embodiment of
8. Connection Between Composite Nose and Composite Floor
Referring next to
The connection 800 illustratively includes an exterior connector 810 positioned outside of the cargo body 130 and an interior connector 820 positioned inside of the cargo body 130. The illustrative exterior connector 810 is a flat plate. The illustrative interior connector 820 is a corner bracket that is generally L-shaped in cross-section, having a vertical portion 822 and a horizontal portion 824. Both the exterior connector 810 and the interior connector 820 may be elongate structures that extend horizontally along the width of vehicle 100. However, as discussed in Section 4 above, the exterior connector 810 and the interior connector 820 may vary in size and shape. For example, rather than being flat as shown in
To assemble the connection 800, the exterior connector 810 may first be adhesively bonded to the composite floor 140 using adhesive 300. Next, the composite nose 170 may be lowered onto the front edge 146 of the composite floor 140 and adhesively bonded to the exterior connector 810 using adhesive 300. It is also within the scope of the present disclosure to adhesively bond the lower end 172 of the composite nose 170 directly to the front edge 146 of the composite floor 140. Finally, the interior connector 820 may be adhesively bonded to the composite nose 170 and the composite floor 140. Specifically, portion 822 of the interior connector 820 may be adhesively bonded to the composite nose 170 using adhesive 300, and portion 824 of the interior connector 820 may be adhesively bonded to the composite floor 140 using adhesive 300.
According to an exemplary embodiment of the present disclosure, the front edge 146 of the composite floor 140 includes a front recess 147 that is sized and shaped to receive portion 824 of the interior connector 820. When assembled, the composite floor 140 and the interior connector 820 may cooperate to define a flush surface 830 for cargo.
9. Connection Between Composite Nose and Composite Roof
Referring next to
The connection 900 illustratively includes an exterior connector 910 positioned outside of the cargo body 130 and an interior connector 920 positioned inside of the cargo body 130. The illustrative exterior connector 910 is a corner bracket that is generally L-shaped in cross-section, having a vertical portion 912 and a horizontal portion 914. The illustrative interior connector 920 is also a corner bracket that is generally L-shaped in cross-section, having a vertical portion 922 and a horizontal portion 924. Both the exterior connector 910 and the interior connector 920 may be elongate structures that extend horizontally along the width of vehicle 100. However, as discussed in Section 4 above, the exterior connector 910 and the interior connector 920 may vary in size and shape. For example, rather than being L-shaped as shown in
To assemble the connection 900, the composite roof 150 may first be lowered onto the upper end 174 of the composite nose 170. It is within the scope of the present disclosure to adhesively bond the composite roof 150 directly to the composite nose 170 using adhesive 300. Next, the exterior connector 910 may be adhesively bonded to the composite nose 170 and the composite roof 150. Specifically, portion 912 of the exterior connector 910 may be adhesively bonded to the composite nose 170 using adhesive 300, and portion 914 of the exterior connector 910 may be adhesively bonded to the composite roof 150 using adhesive 300. In this position, the exterior connector 910 may protect the upper front end 102 of the cargo body 130 from overhead objects, such as trees or garage doors, for example. Finally, the interior connector 920 may be adhesively bonded to the composite nose 170 and the composite roof 150. Specifically, portion 922 of the interior connector 920 may be adhesively bonded to the composite nose 170 using adhesive 300, and portion 924 of the interior connector 920 may be adhesively bonded to the composite roof 150 using adhesive 300.
According to an exemplary embodiment of the present disclosure, connection 900 includes a conduit 930 to accommodate electrical wiring, air lines, or other equipment. In the illustrated embodiment of
10. Connection Between Composite Nose and Composite Sidewalls
Referring next to
The connection 1000 illustratively includes an exterior connector 1010 positioned outside of the cargo body 130 and an interior connector 1020 positioned inside of the cargo body 130. The illustrative exterior connector 1010 is a curved corner bracket that is generally a rounded L-shape in cross-section, having a front portion 1012 and a side portion 1014. The illustrative interior connector 1020 is a corner bracket that is generally L-shaped in cross-section, having a front portion 1022 and a side portion 1024. Both the exterior connector 1010 and the interior connector 1020 may be elongate structures that extend vertically along the height of vehicle 100. However, as discussed in Section 4 above, the exterior connector 1010 and the interior connector 1020 may vary in size and shape. For example, rather than being a rounded L-shape as shown in
To assemble the connection 1000, the outer edge 176 of the nose 170 may first be positioned against the front end 166 of the composite sidewall 160. It is within the scope of the present disclosure to adhesively bond the composite nose 170 directly to the composite sidewall 160. Next, the exterior connector 1010 may be adhesively bonded to the composite nose 170 and the composite sidewall 160. Specifically, portion 1012 of the exterior connector 1010 may be adhesively bonded to the composite nose 170 using adhesive 300, and portion 1014 of the exterior connector 1010 may be adhesively bonded to the composite sidewall 160 using adhesive 300. Finally, the interior connector 1020 may be adhesively bonded to the composite nose 160 and the composite sidewall 170. Specifically, portion 1022 of the interior connector 1020 may be adhesively bonded to the composite nose 160 using adhesive 300, and portion 1024 of the interior connector 1020 may be adhesively bonded to the composite sidewall 160 using adhesive 300.
According to an exemplary embodiment of the present disclosure, connection 1000 includes a conduit 1030 to accommodate electrical wiring, air lines, or other equipment. In the illustrated embodiment of
11. Connection Between Composite Roof and Metallic Rear Frame
Referring next to
The connection 1100 illustratively includes an exterior connector 1110 positioned outside of the cargo body 130 and an interior connector 1120 (
To assemble the connection 1100, the exterior connector 1110 may be adhesively bonded to the composite roof 150 using adhesive 300 and simultaneously mechanically fastened to the metallic rear frame 182 using an initial set of fasteners 1112. After the adhesive 300 solidifies, the remaining fasteners 1112 may be inserted to fully secure the exterior connector 1110 to the rear frame 182. This process may be repeated for the interior connector 1120 by adhesively bonding the interior connector 1120 to the composite roof 150 using adhesive 300 and mechanically fastening the interior connector 1120 to the metallic rear frame 182 using fasteners 1122. It is also within the scope of the present disclosure that the exterior connector 1110 and/or the interior connector 1120 may be adhesively bonded to the metallic rear frame 182 rather than being mechanically fastened to the metallic rear frame 182. It is further within the scope of the present disclosure to adhesively bond the composite roof 150 directly to the metallic rear frame 182, with or without using the exterior connector 1110 and/or the interior connector 1120.
According to an exemplary embodiment of the present disclosure, the composite roof 150 includes a rear recess 158 that is sized and shaped to receive the exterior connector 1110. When assembled, the composite roof 150 and the exterior connector 1110 may cooperate to define a flush upper surface 1130 that promotes water run-off from vehicle 100.
According to another exemplary embodiment of the present disclosure, the connection 1100 further includes a thermal break plate 1140 positioned between the metallic interior connector 1120 and the metallic rear frame 182. The thermal break plate 1140 may be constructed of an insulating material to reduce or prevent heat transfer between the interior connector 1120 and the rear frame 182.
An alternative connection 1100′ is shown in
12. Connection Between Composite Sidewalls and Metallic Rear Frame
Referring next to
The connection 1200 illustratively includes an exterior connector 1210 positioned outside of the cargo body 130 and an interior connector 1220 (
To assemble the connection 1200, the exterior connector 1210 may be adhesively bonded to the composite sidewall 160 using adhesive 300 and simultaneously mechanically fastened to the metallic rear frame 182 using an initial set of fasteners 1212. After the adhesive 300 solidifies, the remaining fasteners 1212 may be inserted to fully secure the exterior connector 1210 to the rear frame 182. This process may be repeated for the interior connector 1220 by adhesively bonding the interior connector 1220 to the composite sidewall 160 using adhesive 300 and mechanically fastening the interior connector 1220 to the metallic rear frame 182 using fasteners 1222. It is also within the scope of the present disclosure that the exterior connector 1210 and/or the interior connector 1220 may be adhesively bonded to the metallic rear frame 182 rather than being mechanically fastened to the metallic rear frame 182. It is further within the scope of the present disclosure to adhesively bond the composite sidewall 160 directly to the metallic rear frame 182, with or without using the exterior connector 1210 and/or the interior connector 1220.
According to another exemplary embodiment of the present disclosure, the connection 1200 includes a thermal break plate 1230 positioned between the metallic interior connector 1220 and the metallic rear frame 182. The thermal break plate 1230 may be constructed of an insulating material to reduce or prevent heat transfer between the interior connector 1220 and the rear frame 182.
13. Connection Between Composite Floor and Metallic Rear Frame
Referring next to
The connection 1300 illustratively includes a lower connector 1310 and an upper connector 1320. The illustrative lower connector 1310 is a corner bracket that is generally L-shaped in cross-section, having a horizontal portion 1312 and a vertical portion 1314. The illustrative upper connector 1320 is a flat plate with a textured, slip-resistant surface 1322. Both the lower connector 1310 and the upper connector 1320 may be elongate structures that extend horizontally along the width of vehicle 100. However, as discussed in Section 4 above, the lower connector 1310 and the upper connector 1320 may vary in size and shape.
To assemble the connection 1300, the lower connector 1310 may first be adhesively bonded to the composite floor 140. Specifically, the horizontal portion 1312 of the lower connector 1310 may be adhesively bonded to the horizontal portion 148 of the composite floor 140 using adhesive 300, and the vertical portion 1314 of the lower connector 1310 may be adhesively bonded to the vertical portion 149 of the composite floor 140 using adhesive 300. Next, the metallic rear frame 182 may be mechanically fastened to the composite floor 140 by inserting fasteners 1316 horizontally through aligned holes in the vertical portion 186 of the metallic rear frame 182, the vertical portion 149 of the composite floor 140, and the vertical portion 1314 of the lower connector 1310. In this arrangement, the lower connector 1310 may serve as a backing plate that supports the composite floor 140 for receipt of the fasteners 1316 by reducing potential stress concentrations around the fasteners 1316 and their corresponding holes. Next, the upper connector 1320 may be adhesively bonded to the horizontal portion 148 of the composite floor 140 using adhesive 300 and simultaneously mechanically fastened to the horizontal portion 184 of the metallic rear frame 182 using an initial set of fasteners 1322. After the adhesive 300 solidifies, the remaining fasteners 1322 may be inserted to fully secure the upper connector 1320 to the rear frame 182. It is also within the scope of the present disclosure that the lower connector 1310 and/or the upper connector 1320 may be adhesively bonded to the metallic rear frame 182 rather than being mechanically fastened to the metallic rear frame 182. It is further within the scope of the present disclosure to adhesively bond the composite floor 140 directly to the metallic rear frame 182, with or without using the lower connector 1310 and/or the upper connector 1320.
According to an exemplary embodiment of the present disclosure, the composite floor 140 includes a rear recess 141 that is sized and shaped to receive the upper connector 1320. When assembled, the upper connector 1320 may serve as a step or threshold between the composite floor 140 and the metallic rear frame 182.
According to another exemplary embodiment of the present disclosure, the connection 1300 further includes a thermal break plate 1330 positioned between the metallic upper connector 1320 and the metallic rear frame 182. Specifically, the thermal break plate 1330 may be positioned between metallic upper connector 1320 and the horizontal portion 184 of the metallic rear frame 182. The thermal break plate 1330 may be constructed of an insulating material to reduce or prevent heat transfer between the upper connector 1320 and the rear frame 182.
14. Connection Between Metallic Bumper Assembly and Metallic Chassis
Referring next to
To assemble the connection 1400, the metallic bumper support rails 122 of the bumper assembly 120 are received into corresponding metallic rails 112 of chassis 100. Then, to prevent the metallic bumper support rails 122 from sliding relative to the metallic rails 112, the metallic bumper support rails 122 and the metallic rails 112 are mechanically fastened together using laterally-extending fasteners 1412. Also, the metallic bumper support rails 122 are mechanically fastened to the rear frame 182 using longitudinally-extending fasteners 1414 and laterally-extending fasteners 1416.
15. Connection Between Composite Sidewall and Side Door
Referring next to
The connection 1500 illustratively includes an exterior connector 1510 positioned outside of the cargo body 130 and an interior connector 1520 positioned inside of the cargo body 130. The exterior connector 1510 and the interior connector 1520 cooperate to frame the opening 1501 in the composite sidewall 160 for receipt of the side door. For example, the exterior connector 1510 and the interior connector 1520 may span the edges 1504, 1506, 1508 of the composite sidewall 160 to frame the opening 1501 in the composite sidewall 160. Thus, the exterior connector 1510 and/or the interior connector 1520 may also be referred to herein as a door frame.
As shown in
To assemble the connection 1500, the exterior connector 1510 may be adhesively bonded to the composite sidewall 160 using adhesive 300. Specifically, portion 1512 of the exterior connector 1510 may be adhesively bonded to the exterior surface 1502 of composite sidewall 160 using adhesive 300, and portion 1514 of the exterior connector 1510 may be adhesively bonded to edges 1504, 1506, 1508 of composite sidewall 160 using adhesive 300. Portion 1524 of the interior connector 1520 may be positioned to at least partially overlap portion 1514 of the exterior connector 1510, as shown in
According to an exemplary embodiment of the present disclosure, the connection 1500 includes a thermal break plate 1530 positioned between the overlapping portion 1514, 1524 of the connectors 1510, 1520. The thermal break plate 1530 may be constructed of an insulating material to reduce or prevent heat transfer between the connectors 1510, 1520, especially when both of the connectors 1510, 1520 are constructed of thermally conductive materials, such as metals. The thermal break plate 1530 may be unnecessary if one or both of the connectors 1510, 1520 is constructed of a more insulating material, such as a composite material.
According to another exemplary embodiment of the present disclosure, the composite sidewall 160 may be internally and/or externally strengthened at or near the opening 1501 to support the connectors 1510, 1520 and the side door. In the illustrated embodiment of
16. Connection Between Composite Nose and a Thermal Control Unit
Referring next to
The connection 1600 may include a plurality of mechanical fasteners (e.g., bolts), illustratively two upper mechanical fasteners 1610, 1612 and two lower mechanical fasteners 1614, 1616. In
To distribute loads from the fasteners 1610, 1612, 1614, 1616 across the composite nose 170, each fastener 1610, 1612, 1614, 1616 may be associated with a corresponding exterior connector 1620, 1622, 1624, 1626 positioned outside of the cargo body 130 and/or a corresponding interior connector 1630, 1632, 1634, 1636 positioned inside of the cargo body 130. In certain embodiments, the exterior connectors 1620, 1622, 1624, 1626 and/or the interior connectors 1630, 1632, 1634, 1636 may define holes for receiving the corresponding fasteners 1610, 1612, 1614, 1616. In other embodiments, the exterior connectors 1620, 1622, 1624, 1626 and/or the interior connectors 1630, 1632, 1634, 1636 may be permanently coupled to the corresponding fasteners 1610, 1612, 1614, 1616. With respect to the lower fasteners 1614, 1616, the illustrative exterior connectors 1624, 1626, and the illustrative interior connectors 1634, 1636 are flat plates, each having a hole for receiving the corresponding lower fastener 1614, 1616. With respect to the upper fasteners 1610, 1612, the illustrative exterior connectors 1620, 1622 are part of the exterior connector 910 between the composite nose 170 and the composite roof 150, and the illustrative interior connectors 1630, 1632 are part of the interior connector 920 between the composite nose 170 and the composite roof 150, each having a hole for receiving the corresponding upper fastener 1610, 1612. In this manner, the connection 1600 may take advantage of the connection 900 between the composite nose 170 and the composite roof 150 (
To assemble the connection 1600, the exterior connectors 1620, 1622, 1624, 1626 may be adhesively bonded to the exterior surface 1602 of the composite nose 170 using adhesive 300. Similarly, the interior connectors 1630, 1632, 1634, 1636 may be adhesively bonded to the interior surface 1603 of the composite nose 170 using adhesive 300. It is also within the scope of the present disclosure for the exterior connectors 1620, 1622, 1624, 1626 and/or the interior connectors 1630, 1632, 1634, 1636 to be mechanically fastened to the composite nose 170. Then, the fasteners 1610, 1612, 1614, 1616 may be coupled to the composite nose 170. For example, the fasteners 1610, 1612, 1614, 1616 may be inserted through the holes in the interior connectors 1630, 1632, 1634, 1636, through the composite nose 170, and through the holes in the exterior connectors 1620, 1622, 1624, 1626. With the fasteners 1610, 1612, 1614, 1616 protruding from the exterior surface 1602 of the composite nose 170, the thermal control unit (not shown) may be coupled to the fasteners 1610, 1612, 1614, 1616.
According to an exemplary embodiment of the present disclosure, the composite nose 170 may be internally and/or externally strengthened at or near the opening 1601 to support the fasteners 1610, 1612, 1614, 1616, the exterior connectors 1620, 1622, 1624, 1626, the interior connectors 1630, 1632, 1634, 1636, and the thermal control unit. In the illustrated embodiment of
The illustrative support beams 1644, 1646, 1648, 1649 are generally square in cross-section. However, the size and shape of the support beams 1644, 1646, 1648, 1649 may vary. For example, rather than being square in cross-section, the support beams 1644, 1646, 1648, 1649 may be rectangular, circular, or C-shaped in cross-section. It is also within the scope of the present disclosure to include other support beams in the composite nose 170.
While this invention has been described as having an exemplary design, the present invention may be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practices in the art to which this invention pertains.
This application is a continuation of U.S. patent application Ser. No. 15/550,366, filed Aug. 10, 2017, which is a U.S. national stage application of International Patent Application No. PCT/2016/019100, filed Feb. 23, 2016, which claims priority to the following U.S. Provisional Patent Applications, the disclosures of which are hereby expressly incorporated by reference herein in their entirety: application Ser. No.Filing Date62/119,460Feb. 23, 201562/235,166Sep. 30, 201562/245,227Oct. 22, 2015
Number | Name | Date | Kind |
---|---|---|---|
3557992 | Reeves | Jan 1971 | A |
3637252 | Metsker | Jan 1972 | A |
3910624 | Becker | Oct 1975 | A |
4239276 | Bertolini | Dec 1980 | A |
4418507 | Roberts et al. | Dec 1983 | A |
4685720 | Oren et al. | Aug 1987 | A |
4758299 | Burke | Jul 1988 | A |
4976490 | Gentle | Dec 1990 | A |
5143418 | Fouquet | Sep 1992 | A |
5403063 | Sjostedt et al. | Apr 1995 | A |
5429066 | Lewit et al. | Jul 1995 | A |
5507405 | Thomas et al. | Apr 1996 | A |
5562981 | Ehrlich | Oct 1996 | A |
5664518 | Lewit et al. | Sep 1997 | A |
5700118 | Benneii et al. | Dec 1997 | A |
5765639 | Muth | Jun 1998 | A |
5772276 | Fetz et al. | Jun 1998 | A |
5800749 | Lewit et al. | Sep 1998 | A |
5802984 | Thoman et al. | Sep 1998 | A |
5830308 | Reichard | Nov 1998 | A |
5860668 | Hull et al. | Jan 1999 | A |
5860693 | Ehrlich | Jan 1999 | A |
5890435 | Thoman et al. | Apr 1999 | A |
5897818 | Lewit et al. | Apr 1999 | A |
5908591 | Lewit et al. | Jun 1999 | A |
5916093 | Fecko et al. | Jun 1999 | A |
5979684 | Ohnishi et al. | Nov 1999 | A |
5992117 | Schmidt | Nov 1999 | A |
6004492 | Lewit et al. | Dec 1999 | A |
6013213 | Lewit et al. | Jan 2000 | A |
6076693 | Reiter et al. | Jun 2000 | A |
6082810 | Bennett | Jul 2000 | A |
6092472 | Thoman et al. | Jul 2000 | A |
6199939 | Ehrlich | Mar 2001 | B1 |
6206669 | Lewit et al. | Mar 2001 | B1 |
6220651 | Ehrlich | Apr 2001 | B1 |
6227125 | Schroeder et al. | May 2001 | B1 |
6247747 | Kawanomoto et al. | Jun 2001 | B1 |
6318794 | Berube | Nov 2001 | B1 |
6349988 | Foster et al. | Feb 2002 | B1 |
6374546 | Fecko et al. | Apr 2002 | B1 |
6496190 | Driemeyer et al. | Dec 2002 | B1 |
6497190 | Lewit | Dec 2002 | B1 |
6505883 | Ehrlich | Jan 2003 | B1 |
6543469 | Lewit et al. | Apr 2003 | B2 |
6615741 | Fecko et al. | Sep 2003 | B2 |
6626622 | Zubko | Sep 2003 | B2 |
6688835 | Buher | Feb 2004 | B1 |
6723273 | Johnson et al. | Apr 2004 | B2 |
6740381 | Day et al. | May 2004 | B2 |
6745470 | Foster et al. | Jun 2004 | B2 |
6755998 | Reichard et al. | Jun 2004 | B1 |
6761840 | Fecko et al. | Jul 2004 | B2 |
6824341 | Ehrlich | Nov 2004 | B2 |
6843525 | Preisler | Jan 2005 | B2 |
6854791 | Jaggi | Feb 2005 | B1 |
6863339 | Boehm et al. | Mar 2005 | B2 |
6869561 | Johnson et al. | Mar 2005 | B2 |
6877940 | Nelson et al. | Apr 2005 | B2 |
6893075 | Fenton et al. | May 2005 | B2 |
6911252 | Lewit et al. | Jun 2005 | B2 |
6986546 | Ehrlich | Jan 2006 | B2 |
7000978 | Messano | Feb 2006 | B1 |
7025166 | Thomas | Apr 2006 | B2 |
7025408 | Jones et al. | Apr 2006 | B2 |
7069702 | Ehrlich | Jul 2006 | B2 |
7134820 | Ehrlich | Nov 2006 | B2 |
7182396 | Taylor | Feb 2007 | B2 |
7219952 | Taylor | May 2007 | B2 |
7264305 | Kuriakose | Sep 2007 | B2 |
7353960 | Seiter | Apr 2008 | B2 |
7407216 | Taylor | Aug 2008 | B2 |
7434520 | Zupancich et al. | Oct 2008 | B2 |
7451995 | Bloodworth et al. | Nov 2008 | B2 |
7461888 | Brown | Dec 2008 | B2 |
7517005 | Kuriakose | Apr 2009 | B2 |
7575264 | Solomon | Aug 2009 | B1 |
7578534 | Wuerfel, III | Aug 2009 | B2 |
7578541 | Layfield et al. | Aug 2009 | B2 |
7587984 | Zupancich et al. | Sep 2009 | B2 |
7588286 | Lewallen et al. | Sep 2009 | B2 |
7594474 | Zupancich | Sep 2009 | B2 |
7608313 | Solomon et al. | Oct 2009 | B2 |
7621589 | Gerome | Nov 2009 | B1 |
7704026 | Roush et al. | Apr 2010 | B2 |
7722112 | Ehrlich | May 2010 | B2 |
7748172 | Zupancich et al. | Jul 2010 | B2 |
7762618 | Lewallen et al. | Jul 2010 | B2 |
7790076 | Seiter et al. | Sep 2010 | B2 |
7829165 | Grandominico et al. | Nov 2010 | B2 |
7887120 | Boivin et al. | Feb 2011 | B2 |
7901537 | Jones et al. | Mar 2011 | B2 |
7905072 | Verhaeghe | Mar 2011 | B2 |
7914034 | Roush | Mar 2011 | B2 |
7931328 | Lewallen et al. | Apr 2011 | B2 |
8016322 | Keehan | Sep 2011 | B2 |
8056960 | Brown | Nov 2011 | B2 |
8186747 | Bloodworth et al. | May 2012 | B2 |
8263217 | Verhaeghe | Sep 2012 | B2 |
8342588 | Skaradzinski | Jan 2013 | B2 |
8448989 | Verhaeghe | May 2013 | B2 |
8474871 | Ludwick | Jul 2013 | B1 |
8696048 | Griffin et al. | Apr 2014 | B2 |
8757704 | Zhao et al. | Jun 2014 | B2 |
8814255 | Yamaji et al. | Aug 2014 | B2 |
8876193 | Kunkel et al. | Nov 2014 | B2 |
8950144 | Padmanabhan | Feb 2015 | B2 |
9051014 | Lookebill et al. | Jun 2015 | B2 |
9138943 | Weinberg et al. | Sep 2015 | B2 |
9138974 | Weinberg et al. | Sep 2015 | B2 |
9138975 | Weinberg et al. | Sep 2015 | B2 |
9174656 | Heitmeyer et al. | Nov 2015 | B2 |
9199440 | Weinberg et al. | Dec 2015 | B2 |
9205635 | Weinberg et al. | Dec 2015 | B2 |
9260117 | Vande Sande | Feb 2016 | B2 |
9317468 | Liebald et al. | Apr 2016 | B2 |
9339987 | Weinberg et al. | May 2016 | B2 |
9409607 | Osten | Aug 2016 | B2 |
9434421 | Lu et al. | Sep 2016 | B1 |
9499203 | Finley | Nov 2016 | B1 |
9566769 | Weinberg et al. | Feb 2017 | B2 |
9604677 | McKinney et al. | Mar 2017 | B2 |
9650003 | Owens et al. | May 2017 | B2 |
9708009 | Vance | Jul 2017 | B2 |
9738050 | Lee et al. | Aug 2017 | B2 |
9744753 | Sheffield et al. | Aug 2017 | B2 |
9815501 | McCormack et al. | Nov 2017 | B2 |
9827750 | Lookebill et al. | Nov 2017 | B2 |
9828164 | Denson | Nov 2017 | B2 |
9878744 | Lu et al. | Jan 2018 | B2 |
9884660 | Fenton | Feb 2018 | B2 |
9884661 | Fenton | Feb 2018 | B2 |
9889637 | Weinberg et al. | Feb 2018 | B2 |
10407103 | Hatke | Sep 2019 | B2 |
20010011832 | Ehrlich et al. | Aug 2001 | A1 |
20050194381 | Zupancich et al. | Sep 2005 | A1 |
20050241253 | Song et al. | Nov 2005 | A1 |
20060065152 | Heitmeyer et al. | Mar 2006 | A1 |
20060108361 | Seiter | May 2006 | A1 |
20060121244 | Godwin et al. | Jun 2006 | A1 |
20060123725 | Godwin | Jun 2006 | A1 |
20060158005 | Brown | Jul 2006 | A1 |
20060179733 | Padmanabhan | Aug 2006 | A1 |
20060201081 | Godwin | Sep 2006 | A1 |
20060219129 | Jarvis | Oct 2006 | A1 |
20070119850 | Seiter | May 2007 | A1 |
20070132278 | Lester et al. | Jun 2007 | A1 |
20070160793 | Cageao et al. | Jul 2007 | A1 |
20070194602 | Ehrlich | Aug 2007 | A1 |
20070216197 | Wuerfel, III | Sep 2007 | A1 |
20070250025 | Sams et al. | Oct 2007 | A1 |
20080238180 | Kraenzle | Oct 2008 | A1 |
20080290057 | Zupancich et al. | Nov 2008 | A1 |
20090126600 | Zupancich et al. | May 2009 | A1 |
20090278386 | Ehrlich | Nov 2009 | A1 |
20100019536 | Bloodworth et al. | Jan 2010 | A1 |
20100101876 | Misencik | Apr 2010 | A1 |
20100109309 | Kootstra | May 2010 | A1 |
20110095574 | Brown | Apr 2011 | A1 |
20110204611 | Ziegler et al. | Aug 2011 | A1 |
20130207413 | Lookebill et al. | Aug 2013 | A1 |
20140199551 | Lewit | Jul 2014 | A1 |
20140262011 | Lewit et al. | Sep 2014 | A1 |
20140300134 | Gerst | Oct 2014 | A1 |
20150054311 | Marchesano et al. | Feb 2015 | A1 |
20150076861 | Padmanabhan | Mar 2015 | A1 |
20150137560 | Preisler et al. | May 2015 | A1 |
20150158532 | Ayuzawa et al. | Jun 2015 | A1 |
20150203160 | Peterson et al. | Jul 2015 | A1 |
20170057561 | Fenton | Mar 2017 | A1 |
20170166263 | McKinney et al. | Jun 2017 | A1 |
20170210317 | Owens et al. | Jul 2017 | A1 |
20170240216 | Bauer et al. | Aug 2017 | A1 |
20170240217 | Storz et al. | Aug 2017 | A1 |
20170241134 | McCloud et al. | Aug 2017 | A1 |
20170247063 | Banerjee et al. | Aug 2017 | A1 |
20170282499 | Larocco | Oct 2017 | A1 |
20170334489 | Shin | Nov 2017 | A1 |
20180037151 | Bauer et al. | Feb 2018 | A1 |
20180057059 | Bauer et al. | Mar 2018 | A1 |
20180194405 | Hatke | Jul 2018 | A1 |
Number | Date | Country |
---|---|---|
0713260 | Nov 1999 | AU |
1329818 | May 1994 | CA |
2181750 | Jan 1997 | CA |
2199584 | Sep 1997 | CA |
2253308 | Nov 1997 | CA |
2551863 | Mar 1998 | CA |
2219312 | Apr 1998 | CA |
2242467 | Jul 1999 | CA |
2261384 | Aug 1999 | CA |
2265405 | Jan 2000 | CA |
2275848 | Dec 2000 | CA |
2382578 | Mar 2001 | CA |
2455957 | May 2004 | CA |
2768878 | Mar 2005 | CA |
2811134 | Apr 2006 | CA |
2529762 | Jun 2006 | CA |
2650992 | Nov 2006 | CA |
2528558 | May 2007 | CA |
2565510 | Aug 2007 | CA |
2604282 | Mar 2008 | CA |
2689745 | Jul 2009 | CA |
2689746 | Jul 2009 | CA |
2689747 | Jul 2009 | CA |
2689748 | Jul 2009 | CA |
2689749 | Jul 2009 | CA |
2689751 | Jul 2009 | CA |
2797778 | Jul 2009 | CA |
2802907 | Jul 2009 | CA |
2788047 | Aug 2011 | CA |
2763094 | Jul 2012 | CA |
2807710 | Aug 2013 | CA |
2848174 | Oct 2014 | CA |
2894059 | Dec 2015 | CA |
2977131 | Sep 2016 | CA |
2958805 | Aug 2017 | CA |
2958838 | Aug 2017 | CA |
2958839 | Aug 2017 | CA |
2617169 | Nov 1977 | DE |
2660119 | Nov 2013 | EP |
06-293233 | Oct 1994 | JP |
Entry |
---|
Black, Sara, “Structural adhesives, Part I: Industrial,” CompositesWorld, posted Apr. 11, 2016, 7 pages. |
CMS North America, Inc., “Transportation: Refrigerated Semi-trailers, Trailers & Vans,” available online at http://www.cmsna.com/13_transportation_refrigerated_semi_trailers_trailers_vans.php on or before Jul. 2, 2014, 2 pages. |
Composite Marine Control Surface, installed on USS Pioneer (MCM 9), May 1997, 13 pages. |
Composite Twisted Rudder, TCC Meeting 2008, handout, 32 pages. |
Eric Green Associates.com, “Composite Rudders Take Shape for U.S. Navy” available online at http://www.ericgreeneassociates.com/Images/Composite_Twisted_Rudder.pdf, accessed as early as Jul. 13, 2014, 7 pages. |
Expedition Portal, “Truck Camper Construction Costs?,” available online at http://www.expeditionportal.com/forum/threads/12486-Truck-Camper-Constrnction-Costs at least as eariy as Jun. 18, 2015, 5 pages. |
Griffiths, Bob, “Rudder Gets New Twist with Composites,” CompositesWorld, posted Aug. 1, 2006, 4 pages. |
International Preliminary Reporton Patentability received for PCT Patent Application No. PCT/US2016/019100, dated Jun. 8, 2017, 30 pages. |
International Search Report and Written Opinion received for PCT Patent Application No. PCT/US2016/019100, dated May 9, 2016, 12 pages. |
International Trucking Shows, “True Composites Platform Highlight of International Trucking Show,” Aug. 1992, 1 page. |
Johnson Truck Bodies, Blizzard Series brochure, accessed as early as Aug. 1, 2014, 8 pages. |
Kedward, Keith and Whitney, James, Delaware Composites Design Encyclopedia, “Design Studies,” vol. 5, 1990, preview version available at https://books.google.com/books?id-9-KYOm81MWEC&printsec=frontcover#v-onepage&q&f=false, 17 pages. |
Lightweight Structures B.V., “ColdFeather: lightweight composite isothermal trailer,” available online at http://www.lightweight-structures.com/coldfeather-lightweight-composite-isothermal-trailer/index.html at least as early as Jun. 18, 2015, 6 pages. |
Morey, Bruce, “Advanced Technologies Supplement: Processes Reduce Composite Costs,” Advanced Manufacturing, posted Apr. 1, 2007, 7 pages. |
NetCompositesNow.com, “Twisted Composites Rudders,” available online at http://www.netcomposites.com/news/twisted-composites-rudders/3202 as early as Aug. 11, 2005, 3 pages. |
North American Composites, Virtual Engineered Composites (VEC) Article, available online at http://www.nacomposites.com/delivering-performance/page.asp?issueid=7&page=cover, Fall 2006, 4 pages. |
Reichard, Dr. Ronnal P., “Composites in Theme Parks: From the perspective of a contractor—trouble shooter-enthusiast!” presented at Florida Institute of Technology at least as early as 1999, 37 pages. |
Scott Bader Group Companies, Crystic, “Composites Handbook”, copyright Dec. 2005, 100 pages. |
Seaver, Mark and Trickey, Stephen, “Underwater Blast Loading of a Composite Twisted Rudder with FBGS,” dated Apr. 14, 2008, 19th International Conference on Optical Fibre Sensors, 2 pages. |
Trailer/Body Builders, “More Emphasis on Less Weight,” available at http://trailer-bodybuilders.com/trailers/more-emphasis-less-weight, May 1, 2008, 5 pages. |
Zweben, Carl, Handbook of Materials Selection, “Chapter 12: Composite Materials,” 2002, preview version available at https://books.google.com/books?id-gWg-rchM700C&printsec=frontcover#tv-onepage&q&f=false, 47 pages. |
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20200180497 A1 | Jun 2020 | US |
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62245227 | Oct 2015 | US | |
62235166 | Sep 2015 | US | |
62119460 | Feb 2015 | US |
Number | Date | Country | |
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Parent | 15550366 | US | |
Child | 16788889 | US |